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Single-molecule spectroelectrochemical cross-correlation during redox cycling in recessed dual ring electrode zero-mode waveguides

机译:凹陷双环电极零模波导中氧化还原循环过程中的单分子光谱电化学互相关

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摘要

The ability of zero-mode waveguides (ZMW) to guide light into subwavelength-diameter nanoapertures has been exploited for studying electron transfer dynamics in zeptoliter-volume nanopores under single-molecule occupancy conditions. In this work, we report the spectroelectrochemical detection of individual molecules of the redox-active, fluorogenic molecule flavin mononucleotide (FMN) freely diffusing in solution. Our approach is based on an array of nanopore-confined recessed dual ring electrodes, wherein repeated reduction and oxidation of a single molecule at two closely spaced annular working electrodes yields amplified electrochemical signals. We have articulated these structures with an optically transparent bottom, so that the nanopores are bifunctional, exhibiting both nanophotonic and nanoelectrochemical behaviors allowing the coupling between electron transfer and fluorescence dynamics to be studied under redox cycling conditions. We also investigated the electric field intensity in electrochemical ZMWs (E-ZMW) through finite-element simulations, and the amplification of fluorescence by redox cycling agrees well with predictions based on optical confinement effects inside the E-ZMW. Proof-of-principle experiments are conducted showing that electrochemical and fluorescence signals may be correlated to reveal single molecule fluctuations in the array population. Cross-correlation of single molecule fluctuations in amperometric response and single photon emission provides unequivocal evidence of single molecule sensitivity.
机译:零模波导(ZMW)引导光进入亚波长直径纳米孔的能力已被用于研究单分子占据条件下zeptoliter-volume纳米孔中的电子转移动力学。在这项工作中,我们报告了在溶液中自由扩散的氧化还原活性,荧光分子黄素单核苷酸(FMN)的单个分子的光谱电化学检测。我们的方法基于纳米孔限制的凹陷双环电极阵列,其中在两个紧密间隔的环形工作电极上重复还原和氧化单个分子会产生放大的电化学信号。我们已经用光学透明的底部铰接了这些结构,因此纳米孔是双功能的,既表现出纳米光子学行为又表现出纳米电化学行为,从而允许在氧化还原循环条件下研究电子转移与荧光动力学之间的耦合。我们还通过有限元模拟研究了电化学ZMWs(E-ZMW)中的电场强度,并且通过氧化还原循环进行的荧光放大与基于E-ZMW内部光学限制效应的预测非常吻合。进行了原理验证实验,显示电化学和荧光信号可能相互关联以揭示阵列总体中的单分子波动。单分子安培响应波动和单光子发射的互相关提供了单分子敏感性的明确证据。

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